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Model-enabled gene search (MEGS) allows fast and direct discovery of enzymatic and transport gene functions in the marine bacterium Vibrio fischeri .
- Source :
-
The Journal of biological chemistry [J Biol Chem] 2017 Jun 16; Vol. 292 (24), pp. 10250-10261. Date of Electronic Publication: 2017 Apr 26. - Publication Year :
- 2017
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Abstract
- Whereas genomes can be rapidly sequenced, the functions of many genes are incompletely or erroneously annotated because of a lack of experimental evidence or prior functional knowledge in sequence databases. To address this weakness, we describe here a m odel- e nabled g ene s earch (MEGS) approach that (i) identifies metabolic functions either missing from an organism's genome annotation or incorrectly assigned to an ORF by using discrepancies between metabolic model predictions and experimental culturing data; (ii) designs functional selection experiments for these specific metabolic functions; and (iii) selects a candidate gene(s) responsible for these functions from a genomic library and directly interrogates this gene's function experimentally. To discover gene functions, MEGS uses genomic functional selections instead of relying on correlations across large experimental datasets or sequence similarity as do other approaches. When applied to the bioluminescent marine bacterium Vibrio fischeri , MEGS successfully identified five genes that are responsible for four metabolic and transport reactions whose absence from a draft metabolic model of V. fischeri caused inaccurate modeling of high-throughput experimental data. This work demonstrates that MEGS provides a rapid and efficient integrated computational and experimental approach for annotating metabolic genes, including those that have previously been uncharacterized or misannotated.<br /> (© 2017 by The American Society for Biochemistry and Molecular Biology, Inc.)
- Subjects :
- Aliivibrio fischeri growth & development
Aliivibrio fischeri metabolism
Animals
Aquaculture
Aquatic Organisms metabolism
Bacterial Proteins metabolism
Computer Simulation
Decapodiformes growth & development
Decapodiformes microbiology
Escherichia coli genetics
Escherichia coli growth & development
Escherichia coli metabolism
Gene Deletion
Genetic Complementation Test
Genomic Library
Hawaii
High-Throughput Nucleotide Sequencing
Molecular Sequence Annotation
Open Reading Frames
Pacific Ocean
Recombinant Proteins metabolism
Reproducibility of Results
Species Specificity
Aliivibrio fischeri genetics
Aquatic Organisms genetics
Bacterial Proteins genetics
Expert Systems
Genomics methods
Models, Genetic
Subjects
Details
- Language :
- English
- ISSN :
- 1083-351X
- Volume :
- 292
- Issue :
- 24
- Database :
- MEDLINE
- Journal :
- The Journal of biological chemistry
- Publication Type :
- Academic Journal
- Accession number :
- 28446608
- Full Text :
- https://doi.org/10.1074/jbc.M116.763193